首页> 外文会议>11th international conference on energy sustainability: batteries and electrochemical energy storage ... >TECHNO-ECONOMIC COMPARISON OF SOLAR-DRIVEN SCO2 BRAYTON CYCLES USING COMPONENT COST MODELS BASELINED WITH VENDOR DATA AND ESTIMATES
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TECHNO-ECONOMIC COMPARISON OF SOLAR-DRIVEN SCO2 BRAYTON CYCLES USING COMPONENT COST MODELS BASELINED WITH VENDOR DATA AND ESTIMATES

机译:基于供应商数据和估计值的组件成本模型对太阳能驱动的SCO2布雷顿循环的技术经济比较

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Supercritical carbon dioxide (sCO2) Brayton power cycles have the potential to significantly improve the economic viability of concentrating solar power (CSP) plants by increasing the thermal to electric conversion efficiency from around 35% using high-temperature steam Rankine systems to above 45% depending on the cycle configuration. These systems are the most likely path toward achieving the Department of Energy's (DOE) Office of Energy Efficiency and Renewable Energy (EERE) SunShot targets for CSP tower thermal to electric conversion efficiency above 50% with dry cooling to air at 40 ℃ and a power block cost of less than 900 $/kWe. Many studies have been conducted to optimize the performance of various sCO2 Brayton cycle configurations in order to achieve high efficiency, and a few have accounted for drivers of cost such as equipment size in the optimization, but complete techno-economic optimization has not been feasible because there are no validated models relating component performance and cost. Reasonably accurate component cost models exist from several sources for conventional equipment including turbines, compressors, and heat exchangers for use in rough order of magnitude cost estimates when assembling a system of conventional equipment. However, cost data from fabricated equipment relevant to sCO2 Brayton cycles is very limited in terms of both supplier variety and performance level with most existing data in the range of 1 MWe power cycles or smaller systems, a single completed system around 7 MWe by Echogen Power Systems, and numerous ROM estimates based on preliminary designs of equipment for 10 MWe systems. This data is highly proprietary as the publication of individual data by any single supplier would damage their market position by potentially allowing other vendors to undercut their stated price rather than competing on reduced manufacturing costs. This paper describes one approach to develop component cost models in order to enable the techno-economic optimization activities needed to guide further research and development while protecting commercially proprietary information from individual vendors. Existing cost models were taken from literature for each major component used in different sCO2 Brayton cycle configurations and adjusted for their magnitude to fit the limited vendor cost data and estimates available. A mean fit curve was developed for each component and used to calculate updated cost comparisons between previously-reviewed sCO2 Brayton cycle configurations for CSP applications including simple recuperated, recompression, cascaded, and mixed-gas combined bifurcation with intercooling cycles. These fitting curves represent an average of the assembled vendor data without revealing any individual vendor cost, and maintain the scaling behavior with performance expected from similar equipment found in literature.
机译:超临界二氧化碳(sCO2)布雷顿动力循环有潜力通过将高温蒸汽朗肯系统的热电转换效率从35%左右提高到45%以上,来显着提高集中式太阳能发电厂的经济可行性。在循环配置上。这些系统是实现能源部(DOE)能源效率和可再生能源办公室(EERE)SunShot目标的最可能途径,该目标是将CSP塔的热电转化效率提高到50%以上,并在40℃的空气中进行干式冷却并提供功率。区块成本低于900 $ / kWe。为了达到高效率,已经进行了许多研究来优化各种sCO2布雷顿循环配置的性能,并且在优化中考虑了成本驱动因素(例如设备尺寸),但是由于技术经济性的全面优化并不可行,因为没有关于组件性能和成本的经过验证的模型。常规设备包括涡轮机,压缩机和换热器的几种来源都存在合理准确的组件成本模型,这些组件在组装常规设备的系统时会以粗略的数量级成本估算来使用。但是,就供应商种类和性能水平而言,来自与sCO2布雷顿循环有关的制造设备的成本数据非常有限,大多数现有数据在1 MWe功率循环或更小的系统范围内,Echogen Power的单个完整系统约为7 MWe系统以及基于10 MWe系统设备的初步设计的许多ROM估计。此数据具有高度专有性,因为任何单个供应商发布的单个数据都可能通过潜在地允许其他供应商降低其标价而不是在降低制造成本方面展开竞争而损害其市场地位。本文介绍了一种开发组件成本模型的方法,以便能够进行必要的技术经济优化活动来指导进一步的研发,同时保护各个供应商的商业专有信息。针对不同sCO2 Brayton循环配置中使用的每个主要组件,从文献中获取了现有成本模型,并对其幅度进行了调整,以适应有限的厂商成本数据和可用估算。为每个组件开发了一条平均拟合曲线,用于计算先前审查的用于CSP应用的sCO2布雷顿循环配置之间的更新成本比较,包括简单的回热,再压缩,级联和混合气体合并分叉和中间冷却循环。这些拟合曲线代表组装的供应商数据的平均值,而没有揭示任何单个供应商的成本,并保持缩放行为,并具有文献中类似设备所预期的性能。

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